Non-equilibrium dynamics of superconductivity in the Hatsugai-Kohmoto model
We study the non-equilibrium dynamics of the superconducting order parameter in the Hatsugai-Kohmoto (HK) model. In the absence of superconductivity, its ground state is a non-Fermi liquid, whose properties are controlled by the HK interaction. Our protocol involves quantum quenching the HK interact...
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Zusammenfassung: | We study the non-equilibrium dynamics of the superconducting order parameter
in the Hatsugai-Kohmoto (HK) model. In the absence of superconductivity, its
ground state is a non-Fermi liquid, whose properties are controlled by the HK
interaction. Our protocol involves quantum quenching the HK interaction but
leaving the interaction responsible for superconductivity unchanged. We map out
the non-equilibrium dynamical phase diagram of the interacting model which
contains three phases where, at long times, the order parameter amplitude
vanishes, approaches a constant value or persistently oscillates. We also
investigate the Loschmidt echo in searching for dynamical quantum phase
transition, and find no significant correlation between the three phases and
the non-analytic temporal behaviour of the Loschmidt echo. The momentum space
entanglement entropy between positive and negative momentum modes, relevant for
Coopair pairing, is calculated. Counterintuitively, this momentum space
entanglement does not change significantly during the quench dynamics and its
value remains reasonably large even for vanishing superconducting order
parameter. Nevertheless, its derivative with respect to the HK interaction
signals the dynamical phase transition associated to the late time vanishing of
superconductivity. |
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DOI: | 10.48550/arxiv.2410.14424 |